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When I use

 function __construct()
    {
      // open db
      $this->db = new mysqli(DB_HOST, DB_USER, DB_PASSWORD, DB_DATABASE);
      if (!$this->db)
        die(mysql_error());

      $this->db->query("SET NAMES 'utf8';");
    }


$result=$this->db->query("SELECT OrgNo, CompanyName FROM ematch WHERE CompanyName LIKE '%$word%';");
           $num=$result->num_rows;
          print $num; 
           $i=0;
            while ($i < $num) 
            {
                 $OrgNo=mysql_result($result,$i,"OrgNo");
                 $CompanyName=mysql_result($result,$i,"CompanyName");
                 $i++;
                 print $OrgNo.' '.$CompanyName.'<br>';
            }

I get this error: Warning: mysql_result(): supplied argument is not a valid MySQL result resource and nothing comes out.

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4  
This can't be answered, because you seem to be using a custom DB wrapper. We do not know what ->query() returns –  Pekka 웃 Nov 11 '10 at 12:14
    
@Pekka: I think you might be wrong. If $this->db is the mysqli connection, then $this->db->query is the regular query method of the mysqli OO interface. –  markus Nov 11 '10 at 13:32
    
@tharkun the mysqli part was edited in later. It makes sense now –  Pekka 웃 Nov 11 '10 at 14:01
    
Where does $word come from? If it's user input, and not sanitized, your script is open to SQL injection. Use prepared queries, turning the pattern for LIKE into a parameter. Also, if your host supports PDO (as any host worth its static IP should), use it instead of mysqli. One advantage to PDO is that iterating over results can be done with a foreach loop: <ul><?php foreach ($result as $row): ?><li><?php echo $row['OrgNo'], ' ', $row['CompanyName']; ?></li><?php endforeach; ?></ul>. –  outis Nov 11 '10 at 14:16

3 Answers 3

up vote 6 down vote accepted

You can change your code to this:

$result = $this->db->query("SELECT OrgNo, CompanyName FROM ematch WHERE CompanyName LIKE '%$word%';");

while ($row = mysqli_fetch_array($result)) 
{
  print $row['OrgNo'] .'<br />';
  print $row['CompanyName'] .'<br />';
}

Where it is assumed that $result returned form your query method is a result resource.

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Try removing the semi-colon from your SQL statement.

"SELECT OrgNo, CompanyName FROM ematch WHERE CompanyName LIKE '%$word%';"

should probably be

"SELECT OrgNo, CompanyName FROM ematch WHERE CompanyName LIKE '%$word%'"
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1  
Semicolons are SQL terminators, though they're not usually required when accessing MySQL programmatically. They won't cause problems on their own. –  outis Nov 11 '10 at 14:08
1  
consider me learned! –  kevtrout Nov 11 '10 at 14:20

You are going to have to show us the DB wrapper/class you are using but I'd like to have a guess at a way forward:

$result = $this->db->query("SELECT OrgNo, CompanyName FROM ematch WHERE CompanyName LIKE '%$word%';");
while($row = mysqli_fetch_array($result)) {
    print $row['OrgNo']." ".$row['CompanyName']."<br>";
}

As you are using a custom DB wrapper youd be better use its way of fetching rows one by one rather than using mysqli_fetch_array();

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It shows a warning for all mysql function. do I have to add reference or include something? –  Ahmad Farid Nov 11 '10 at 12:29
    
@Ahmad Farid - show us or tell us what DB wrapper/class you are using and we can write the code for that wrapper/class and help further –  Brady Nov 11 '10 at 12:34

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